4.8 Article

Observation of a topological crystalline insulator phase and topological phase transition in Pb1-xSnxTe

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NATURE COMMUNICATIONS
卷 3, 期 -, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/ncomms2191

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资金

  1. Office of Basic Energy Sciences, US Department of Energy [DE-FG-02-05ER46200, AC03-76SF00098, DE-FG02-07ER46352]
  2. National Science Council (NSC)-Taiwan [NSC100-2119-M-002-021]
  3. [DMR-0819860]
  4. [DMR-1006492]

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A topological insulator protected by time-reversal symmetry is realized via spin-orbit interaction-driven band inversion. The topological phase in the Bi1-xSbx system is due to an odd number of band inversions. A related spin-orbit system, the Pb1-xSnxTe, has long been known to contain an even number of inversions based on band theory. Here we experimentally investigate the possibility of a mirror symmetry-protected topological crystalline insulator phase in the Pb1-xSnxTe class of materials that has been theoretically predicted to exist in its end compound SnTe. Our experimental results show that at a finite Pb composition above the topological inversion phase transition, the surface exhibits even number of spin-polarized Dirac cone states revealing mirror-protected topological order distinct from that observed in Bi1-xSbx. Our observation of the spin-polarized Dirac surface states in the inverted Pb1-xSnxTe and their absence in the non-inverted compounds related via a topological phase transition provide the experimental groundwork for opening the research on novel topological order in quantum devices.

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